Effect of Absorption Layer on Femtosecond Laser Shock Peening of Copper Foil

被引:0
|
作者
Tian T. [1 ]
Zhang J.-Q. [1 ]
Huang T. [1 ]
Xiao R.-S. [1 ]
机构
[1] High-power and Ultrafast Laser Manufacturing Lab, Faculty of Materials and Manufacturing, Beijing University of Technology, Beijing
来源
Surface Technology | 2021年 / 50卷 / 12期
关键词
absorption layer; femtosecond laser shock; mechanical property; microstructure;
D O I
10.16490/j.cnki.issn.1001-3660.2021.12.018
中图分类号
学科分类号
摘要
By analyzing the microstructure and mechanical properties of Cu foil after femtosecond laser shock in different absorption layers, the absorption layer with better strengthening effect was selected. Femtosecond lasers were used to impact strengthen the copper foil (Cu-nm) coated with a 100 nm thickness absorption layer and the copper foil (Cu-µm) coated with a 100 µm thickness absorption layer. The microstructure and mechanical properties of the two samples were observed and analyzed by scanning electron microscopy, electron backscatter diffraction, X-ray diffraction, and microhardness tester. After femtosecond laser shock, Cu-nm mainly produced deformation twinning, with 60.9% increase in the twinning ratio, 12.8% increase in the ratio of large-angle grain boundaries, and 10.8% increase in microhardness; Cu-µm mainly underwent dislocation changes, with 16% increase in dislocation density, 9.8% increase in the ratio of small-angle grain boundaries, and 2.2% increase in microhardness. In addition, Cu-nm produces greater residual compressive stress after femtosecond laser shock, which not only neutralizes the residual tensile stress of the base material, but also shows as residual compressive stress, while the residual compressive stress produced by Cu-µm after femtosecond laser shock cannot completely neutralize the residual tensile stress of the base material, and still shows as residual tensile stress. A comparative study showed that the femtosecond laser shock on Cu-nm achieved microstructural twinning, changed the residual stress state and improved the hardness of the copper foil surface. © 2021, Chongqing Wujiu Periodicals Press. All rights reserved.
引用
收藏
页码:174 / 180
页数:6
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共 26 条
  • [1] ZHOU Lei, LI Ying-hong, WANG Cheng, Et al., Laser shock peening for LY2 alloy, High power laser and particle beams, 22, 8, pp. 1780-1784, (2010)
  • [2] WU Bian, WANG Sheng-bo, GUO Da-hao, Et al., Research of material modification induced by laser shock processing on aluminum alloy, Acta optica sinica, 25, 10, pp. 1352-1356, (2005)
  • [3] YANG J M, HER Y C, HAN Nan-lin, Et al., Laser shock peening on fatigue behavior of 2024-T3 Al alloy with fas-tener holes and stopholes, Materials science and engi-neering: A, 298, 1-2, pp. 296-299, (2001)
  • [4] MOLIAN P, MOLIAN R, NAIR R., Laser shock wave consolidation of nanodiamond powders on aluminum 319, Applied surface science, 255, 6, pp. 3859-3867, (2009)
  • [5] LU Liang, HUANG Ting, ZHONG Min-lin, WC nano-particle surface injection via laser shock peening onto 5A06 aluminum alloy, Surface and coatings techno-logy, 206, 22, pp. 4525-4530, (2012)
  • [6] ZHOU J Z, HUANG S, SHENG J, Et al., Effect of repea-ted impacts on mechanical properties and fatigue fracture morphologies of 6061-T6 aluminum subject to laser pee-ning, Materials science and engineering: A, 539, pp. 360-368, (2012)
  • [7] GILL A S, TELANG A, YE Chang, Et al., Localized plastic deformation and hardening in laser shock peened Inco-nel alloy 718SPF, Materials characterization, 142, pp. 15-26, (2018)
  • [8] LU J Z, WU L J, SUN G F, Et al., Microstructural response and grain refinement mechanism of commercially pure titanium subjected to multiple laser shock peening im-pacts, Acta materialia, 127, pp. 252-266, (2017)
  • [9] DHAKAL B, SWAROOP S., Effect of laser shock peening on mechanical and microstructural aspects of 6061-T6 aluminum alloy, Journal of materials processing tech-nology, 282, (2020)
  • [10] ZHOU Jian-zhong, FAN Yu-jie, HUANG Shu, Et al., Research and prospect on micro-scale laser shot peening, Chinese journal of lasers, 38, 6, pp. 17-27, (2011)